Hussain Rafaqat, Rehman Wajid, Khan Shoaib, Jaber Fadi, Rahim Fazal, Shah Mazloom, Khan Yousaf, Iqbal Shahid, Naz Haseena, Khan Imran, Issa Alahmdi Mohammed, Awwad Nasser S, Ibrahium Hala A
Department of Chemistry, Hazara University, Mansehra 21120, Pakistan.
Department of Chemistry, Abbottabad University of Science and Technology (AUST), Abbottabad, Pakistan.
Saudi Pharm J. 2023 Nov;31(11):101823. doi: 10.1016/j.jsps.2023.101823. Epub 2023 Oct 12.
Thymidine phosphorylase (TP) is an angiogenic enzyme. It is crucial for the development, invasion and metastasis of tumors as well as angiogenesis. In our current research, we examine how structurally changing bis-thiadiazole bearing bis-schiff bases affects their ability to inhibit TP. Through the oxidative cyclization of pyridine-based bis-thiosemicarbazone with iodine, a series of fourteen analogs of bis-thiadiazole-based bis-imines with pyridine moiety were developed. Newly synthesized scaffolds were assessed in vitro for their thymidine phosphorylase inhibitory potential and showed moderate to good inhibition profile. Eleven scaffolds such as and were discovered to be more effective than standard drug at inhibiting the thymidine phosphorylase enzyme with IC values of 1.16 ± 1.20, 1.77 ± 1.10, 2.48 ± 1.30, 12.54 ± 1.60, 14.63 ± 1.70, 15.53 ± 1.80, 17.47 ± 1.70, 18.98 ± 1.70, 19.53 ± 1.50, 22.73 ± 2.40 and 24.87 ± 2.80 respectively, while remaining three analogs such as and were found to be more potent, but they were less potent than the standard drug. All analogs underwent SAR studies based on the pattern of substitutions around the aryl part of the bis-thiadiazole skeleton. The most active analogs in the synthesized series were then molecular docking study performed to investigate their interactions of active part of enzyme. The results showed that remarkable interactions were exhibited by these analogs with the targeted enzymes active sites. Furthermore, to confirm the structure of synthesized analogs by employing spectroscopic tools such as HREI-MS and NMR.
胸苷磷酸化酶(TP)是一种血管生成酶。它对于肿瘤的发展、侵袭和转移以及血管生成至关重要。在我们当前的研究中,我们研究了含双噻二唑的双席夫碱的结构变化如何影响其抑制TP的能力。通过吡啶基双硫代氨基脲与碘的氧化环化反应,开发了一系列14种含吡啶部分的双噻二唑基双亚胺类似物。对新合成的支架进行了体外胸苷磷酸化酶抑制潜力评估,结果显示出中等至良好的抑制效果。发现11种支架,如 和 ,在抑制胸苷磷酸化酶方面比标准药物更有效,其IC值分别为1.16±1.20、1.77±1.10、2.48±1.30、12.54±1.60、14.63±1.70、15.53±1.80、17.47±1.70、18.98±1.70、19.53±1.50、22.73±2.40和24.87±2.80,而其余3种类似物,如 和 ,被发现更具活性,但比标准药物活性稍低。所有类似物都基于双噻二唑骨架芳基部分周围的取代模式进行了构效关系研究。然后对合成系列中最具活性的类似物进行了分子对接研究,以研究它们与酶活性部分的相互作用。结果表明,这些类似物与目标酶的活性位点表现出显著的相互作用。此外,通过使用高分辨电子轰击质谱(HREI-MS)和核磁共振(NMR)等光谱工具来确认合成类似物的结构。